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Updated: Jan 8, 2026

Optimized Sealing Process and Real-Time Monitoring of Glass-to-Metal Seal Structures
Published on: September 2, 2019
Development of a Probabilistic Model to Predict Residual Seal Force of Crimped Vial Seals
DanaLouise Cabrita1, George Currier2, Anthony Petrella3
1Drug Product Development, Bristol-Myers Squibb Company, 1 Squibb Drive, New Brunswick, NJ 08901; cabritadana@gmail.com.
Abstract:
One of the most important requirements for a sterile packaging system is container closure integrity (CCI). For vial-based systems composed of a vial, a hyper-elastic stopper, and a rigid crimp seal, CCI testing is an integral part of the drug development process. During the vial-capping process, the component dimensions and materials play a critical role in creating a robust and adequate seal that will satisfy CCI. Although these properties are manufactured within certain tolerances, there exist lot-to-lot variabilities and aging effects. If not taken into consideration during the initial design, these factors can potentially impact the residual seal force (RSF) for a container closure system (CCS). RSF of the vial, while not predictive or causal, is correlated with CCI. For example, it is possible that containers with sufficient RSF can contain defects, including but not limited to fibers, cracks, and folds, that compromise CCI. A robust and efficient deterministic finite element model capable of predicting the RSF for fixed displacement crimping systems was developed for this study. A probabilistic analysis was conducted, and stopper top dimensions (height and outer diameter [OD]) were found to be the most important drivers of seal force magnitude and variation. Seal force was positively correlated with both stopper height and OD. The effect of 2-year accelerated aging of the stopper, prior to assembly, was an increase to material stiffness and corresponding seal force. However, this increase in force was small (∼3%). This corresponds well with practical findings where shelf aging is typically associated with increased material stiffness over time as well as an increase in RSF.
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